Two embodiments for a stent delivery catheter are disclosed. In the first embodiment, the stent delivery catheter comprises an outer sheath, a peel-away sheath, and an inner sheath. In the second embodiment, the stent delivery catheter comprises an outer sheath and an inner tubular member which distally ends in a tongue having an arcuate cross section.
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1. A stent delivery catheter, comprising:
an outer sheath having a distal and proximal end and a lumen therethrough; a peel-away sheath having a distal and proximal end and a lumen therethrough, said peel-away sheath slidably disposed within the lumen of said outer sheath, said peel-away sheath possessing at least one slit extending longitudinally from the distal end of said peel-away sheath and ending substantially at the proximal end of said peel-away sheath; and an inner sheath having a distal and proximal end and a lumen therethrough, said inner sheath slidably disposed within the lumen of said peel-away sheath, said inner sheath having a distal portion proximally extending from the distal end of said inner sheath to a proximal end of said distal portion, said distal portion adapted to receive at least a portion of a stent.
6. A method of placing a stent within a prostatic urethra, said method comprising:
providing a stent delivery catheter comprising: an outer sheath having a distal and a proximal end and a lumen therethrough; a peel-away sheath having a distal and a proximal end and a lumen therethrough, said peel-away sheath slidably disposed within the lumen of said outer sheath; said peel-away sheath possessing at least one slit extending longitudinally from the distal end of said peel-away sheath and ending substantially at the proximal end of said peel-away sheath; an inner sheath having a distal and proximal end and a lumen therethrough, said inner sheath slidably disposed within the lumen of said peel-away sheath, said inner sheath having a distal portion proximally extending from the distal end of said inner sheath to a proximal end of said distal portion, said distal portion adapted to receive at least a portion of a stent; a stent having a distal end and a proximal portion received by said distal portion of said inner sheath, said stent enclosed within the lumen of said peel-away sheath whereby the distal end of said stent is substantially aligned with the distal end of said peel-away sheath and with the distal end of said outer sheath, wherein said peel-away sheath has a proximal extension proximally extending from the proximal end of said outer sheath, and wherein said inner sheath has a proximal extension proximally extending from the proximal end of said peel-away sheath; inserting the catheter through the urethra into the prostatic urethra; proximally displacing the outer sheath with respect to said peel-away sheath along the proximal extension of the peel-away sheath whereby a distal portion of the outer sheath is exposed within the prostatic urethra; distally displacing the inner sheath with respect to the peel-away sheath along the proximal extension of the inner sheath whereby a distal portion of the stent is deployed within the prostatic urethra and resists further displacement; and proximally retracting the inner sheath and the peel-away sheath from the stent whereby the stent is fully deployed within the prostatic urethra.
2. The stent delivery catheter of
3. The stent delivery catheter of
4. The stent delivery catheter of
5. The stent delivery catheter of
a stent having a proximal portion received by said distal portion of said inner sheath, said stent having a distal end, said stent being disposed within the lumen of said peel-away sheath whereby the distal end of said stent, the distal end of said peel-away sheath, and the distal end of said outer sheath are substantially aligned, and wherein said peel-away sheath has a proximal extension proximally extending from the proximal end of said outer sheath, and wherein said inner sheath has a proximal extension proximally extending from the proximal end of said peel-away sheath; at least one restrainer clamped about said proximal extension of said peel-away sheath whereby said outer sheath is prevented from proximal displacements with respect to said peel-away sheath; and at least one restrainer clamped about said proximal extension of said inner sheath whereby said peel-away sheath is prevented from proximal displacements with respect to said inner sheath.
7. The method of
removing all restrainers from the proximal extension of the peel-away sheath prior to the proximal displacement of the outer sheath with respect to the peel-away sheath; and removing all restrainers from the proximal extension of the inner sheath prior to the distal displacement of the inner sheath with respect to the peel-away sheath.
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The present application is a continuation of application Ser. No. 09/567,874, filed May 8, 2000, U.S. Pat. No. 6,221,081 which is a divisional of application Ser. No. 09/152,557, filed Sep. 14, 1998, now U.S. Pat. No. 6,093,194.
Benign prostate hypertrophy, also known as benign prostate hyperplasia (BPH) commonly afflicts men beginning at age 50. The prostate swells and presses on the urethra, making urination difficult and uncomfortable. In addition, it may cause urination urgency. Also afflicting older men is prostate cancer which may metastasize and cause death. Early treatment can reduce the risks of death from prostate cancer.
Both prostate enlargement and prostate cancer may be treated with heat treatments such as hyperthermia or thermotherapy. As described in co-pending U.S. app. Ser. No. 08/629,650, filed Apr. 9, 1996, a stent may serve the dual purpose of acting as a heat source for the thermotherapy procedures, as well as acting to hold the urethra open after therapy to temporarily prevent blockage due to swelling and prostate tissue sloughing. Additionally, a stent may be implanted temporarily while the patient awaits more aggressive surgery or treatment. Rather than implantation after thermotherapy, a stent may be implanted temporarily after cryosurgery or hypothermia. Finally, a stent may be implanted as a primary treatment.
Given the number of therapies employing urethral stents, there is a need in the art for improved stent delivery systems. Eum, U.S. app. Ser. No. 09/063,118, filed Apr. 20, 1998, and incorporated herein by reference, discloses a stent delivery system comprising a catheter with an anchoring mechanism at its distal end that is placed within the bladder. The stent is displaced proximally on the catheter a predetermined distance from the anchor. This ensures that the stent does not affect the bladder sphincter. Placement of a stent within the bladder sphincter could lead to incontinence and other problems. Because the anchoring mechanism must be placed within the bladder, such a stent delivery system requires a flexible endoscope. Many doctors, however, are equipped only with standard rigid urological endoscopes, which cannot maneuver through the prostatic urethra into the bladder. Thus, there is a need in the art for improved stent delivery systems that can accurately and conveniently implant a stent in the prostatic urethra using conventional rigid urological endoscopes.
The stent delivery systems described below permit placement of a stent in the urethra. The devices efficiently implant a stent into the prostatic urethra under direct vision. The invention has two main embodiments.
In the first embodiment, the invention comprises a bi-petaled insertion catheter including an outer sheath, a peel-away sheath adapted to cover a stent mounted within the outer sheath, and an inner sheath covering a proximal portion of the stent. Upon inserting the catheter into the prostatic urethra, a clinician will guide the distal end of the catheter under direct vision proximally to the bladder sphincter using an endoscope inserted within the inner sheath. Additionally, the clinician could guide the distal end of the catheter using ultrasonic or x-ray imaging. The outer sheath is then proximally displaced, exposing the distal end of the peel-away sheath. The distal end of the stent expands and separates longitudinal slits within the exposed portion of the peel-away sheath and begins gripping the urethral wall. By distally displacing the inner sheath with respect to the peel-away sheath and the outer sheath, a clinician distally displaces the distal portion of the stent from the peel-away sheath. Thus exposed, the distal portion of the stent grips the prostatic urethra, allowing the clinician to then fully separate the peel away sheath along its longitudinal slits and retract the peel-away sheath and the inner sheath from the stent to complete the stent deployment.
In a preferred second embodiment, the invention comprises a single-petaled catheter including an outer sheath and an inner tubular member. The inner tubular member ends distally in an elongated tongue having an arcuate cross section. The clinician guides the distal end of the catheter into position using an endoscope inserted within the lumen of the inner tubular member and/or using ultrasonic or x-ray imaging. After positioning the catheter, the clinician proximally displaces the outer sheath to expose the tongue of the inner tubular member. The distal end of the stent expands against the now exposed tongue to begin gripping the urethral wall. When satisfied with the final stent position, the clinician proximally withdraws the inner tubular member away from the stent, using the distal end of the outer sheath to prevent proximal displacement of the stent. The outer sheath may then be withdrawn, completing the stent deployment.
The stent deployment device according to the present invention has two main embodiments. In the first embodiment, the stent deployment device comprises a bi-petaled catheter. In the second embodiment, the stent deployment device comprises a single-petaled catheter. The bi-petaled catheter will be described first.
Turning now to the figures, a bi-petaled catheter 10 is illustrated in
Inner sheath 30 is preferably constructed of Teflon (FEP) material and is slidably disposed within the lumen of peel-away sheath 20. Inner sheath 30 has a distal portion 35 adapted to receive a proximal portion of stent 50. In one embodiment, illustrated in
In a second embodiment of the bi-petaled catheter 10, the distal portion 35 of inner sheath 30, illustrated in
Those skilled in the art will appreciate that many other materials for peel-away sheath 20 and inner sheath 30 besides Teflon may be used in accordance with the present invention. Given the flexibility of peel-away sheath 20 and inner sheath 30, outer sheath 15 preferably is suitably rigid to protect the often-fragile endoscopes that may be used during stent deployment. Thus, outer sheath 15 is preferably constructed of surgical steel to provide the proper rigidity without possessing too large a diameter. This allows for easy insertion into the urethra.
Inner sheath 30, in order to facilitate endoscopic vision, preferably is constructed of a transparent form of Teflon or other suitable material. Luer ports 32 attached to the proximal end of inner sheath 30 allow the introduction of saline or other fluids into the urethra during stent deployment. Luer ports 32 may be fitted with valves 34 (shown in FIG. 1). A seal 36 prevents fluid from leaking when an endoscope 40 is inserted through the adapter port 38 into the lumen of inner sheath 30.
The endoscope 40 shown in
Prior to deployment, stent 50 is coiled within the lumen of distal end 23 of peel-away sheath 20. The proximal portion of stent 50 is also coiled within the lumen of distal portion 35 of inner sheath should the distal portion 35 be adapted with longitudinal slits 31. If the distal portion 35 is adapted with tongue 37, the coiled proximal portion of stent 50 is instead disposed on the inner surface 60 of tongue 37. Stent 50 preferably is constructed out of a shape memory alloy such as Nitinol in a helical shape. Prior to placement within the catheter 10, stent 50 is in its pliable martensitic state. The austenitic transition of stent 50 preferably occurs at body temperature whereby heated saline is not required to activate the stent. Alternatively, the austenitic transition of stent 50.may be slightly higher than body temperature whereby heated saline introduced through the luer ports 32 of inner sheath 30 could be used to transition stent 50 from the martensitic to the austenitic state.
As illustrated in
Similarly, as illustrated in
Satisfied that the catheter 10 has been properly placed within prostatic urethra 53, the clinician may begin the initial deployment of stent 50. As illustrated in
The expansion of stent 50 forces the exposed portion of peel-away sheath 20 to separate along its longitudinal slits 22. As stent 50 separates peel-away sheath 20 along the two longitudinal slits 22, the distal end 23 of peel-away sheath 20 resembles two flower petals. Hence, this embodiment of the invention is denoted a bi-petaled catheter. Peel-away sheath 20 preferably has two longitudinal slits 22. Thus, when pull handles 24 are separated (tearing tab 26), peel-away sheath 20 separates longitudinally into halves. However, those of ordinary skill in the art will realize that a plurality of longitudinal slits 22 greater than two could be used. Such a plurality of longitudinal slits 22 would require a corresponding plurality of pull handles 24.
Although stent 50 abuts the urethral wall through longitudinal slits 22, it is still largely covered by peel-away sheath 20. Because peel-away sheath 20 has a smooth surface, stent 50 may still be re-positioned within the prostatic urethra 53 during this stage of its deployment. This allows a clinician to check the location of stent 50 using an endoscope 40 before moving to the secondary deployment stage.
The secondary deployment stage is illustrated in FIG. 5. After re-checking the position of stent 50 and adjusting as necessary, the clinician removes restrainers 57 from the proximal extension of inner sheath 30. The clinician then distally displaces inner sheath 30 with respect to peel-away sheath 20. As illustrated in
As previously described, distal portion 35 of inner sheath 30 in the bi-petaled catheter 10 may exist in either the longitudinal slit 31 embodiment or in tongue embodiment 35. Each embodiment has its advantages. For example, in the longitudinal slit 31 embodiment, the proximal portion of stent 50 is completely covered and gripped by distal portion 35 of inner sheath 30. This assists the distal displacement of stent 50 with respect to peel-away sheath 20. However, stent 50 may tangle with the distal portion 35 because of meshing with the longitudinal slits 31. This tangling is avoided by the tongue 37 embodiment, which of course does not possess longitudinal slits 31. Nevertheless, because tongue 37 does not completely cover and grip the proximal portion of stent 50, it may kink stent 50 with respect to tongue 37 as distal portion 35 distally displaces stent 50 with respect to peel-away sheath 20. This kinking is alleviated by a radially extending projection or bump 38 at the proximal base of tongue 37 which assists distally displacing stent 50 in a direction parallel to the lumen of inner sheath 30.
Full deployment of stent 50 is illustrated in FIG. 6. The clinician separates pull handles 24, tearing apart tab 26. The separated halves of peel-away sheath, having been "peeled-away" from one another, may now be completely retracted from stent 50. Stent 50 does not proximally displace with this retraction because the already-deployed distal end of stent 50 anchors it in the prostatic urethra 53. Similarly, inner sheath 30 may also be proximally retracted from stent So without any displacement of stent 50. Stent 50, freed from the peel-away sheath 20 and outer sheath 15, may now expand completely and lodge against the prostatic urethral wall 53. After a final check on the position of stent 50 through endoscope 40, the clinician may retract catheter 10 from the penis 51, completing the stent deployment.
Turning now to
The distal end of inner tubular member 80 is formed into an elongated tongue 82 having an arcuate cross section. Thus, because the tongue 82 resembles a single flower petal, this embodiment is denoted a single-petaled catheter 70 as compared to the bi-petaled catheter 10. Unlike the bi-petaled catheter 10, in which the peel-away sheath 20 must be flexible to permit expansion of stent 50 as outer sheath 15 is proximally displaced during deployment, inner tubular member 80 and tongue 82 may be constructed out of a rigid material, preferably medical grade polycarbonate or similar plastic. Because tongue 82 and inner tubular member 80 are rigid, outer sheath 80 may be constructed of polycarbonate plastic also. This contrasts with the bi-petaled catheter 10 in which outer sheath 15 is preferably made of surgical stainless steel. Outer sheath 15 preferably has suitable rigidity to protect often-fragile endoscopes during. insertion of catheter 10 into the urethra because peel-away sheath 20 and inner sheath 30 are flexible. Outer sheath 80 in single-petaled catheter 70 need not provide the same degree of rigidity because inner tubular member 80 is far more rigid, helping to protect endoscope 40 during insertion. Manufacturing outer sheath 80 from polycarbonate plastic rather than steel is not only cheaper but also offers less friction to movements of stent 50. A steel outer sheath would grip stent 50 more firmly, thus hampering stent deployment, because of the greater friction which would exist between the steel outer sheath and stent 50.
Elongated tongue 82 preferably has an arcuate cross section, more preferably approaching 180°C in arc. Thus, in this preferred embodiment, tongue 82 is a longitudinally divided half of tubular member 80. However, the width and arc of tongue 82 may range widely without departing from the spirit of this invention. Indeed, tongue 82 could approach a flattened columnar shape. Those of ordinary skill in the art will appreciate the range of shapes tongue 82 could have while still maintaining its function. The longitudinal length of tongue 82 should extend substantially along the length of stent 50, more preferably along the full length of stent 50 as illustrated in
Prior to deployment, helical-shaped stent 50 lies coiled between the inner surface 89 of tongue 82 and the inner lumen wall 79 of outer-sheath 75 as illustrated in
Before deployment, stent 50 is in the martensitic or compressed stage. In
As similarly used on the bi-petaled catheter 10, restrainers 77 and 78 are placed on single-petaled catheter 70 to prevent premature displacements of outer sheath 75 during insertion of the catheter 70 into the penis 51 and prostatic urethra 53. As illustrated in
Initial deployment of stent 50 by single-petaled catheter 70 is illustrated in FIG. 12. Restrainers 77 that had been placed about the proximal extension of tubular member 20 are removed. The clinician then displaces outer sheath 75 proximally as shown in FIG. 12. Restrainers 77 are sized so that the proximal displacement of outer sheath 75 exposes only a few coils at the distal end of helically shaped stent 50. Having reached its austenitic state either by sensing body temperature or through exposure to warm saline pumped into luer ports 83, these coils of stent 50 expand and begin gripping prostatic urethra 53. But because only a few coils are so deployed, the clinician may check their position and coil spacing using endoscope 40 fluid and adjust if necessary before starting secondary deployment.
Secondary deployment of stent 50 using single-petaled catheter 70 is illustrated in FIG. 13. Satisfied that the distal end of stent 50 is in proper position proximal to bladder sphincter 55 in prostatic urethra 53, the clinician removes restrainers 78. This allows a further proximal displacement of outer sheath 75 with respect to tubular member 80 whereby tongue 82 is exposed. In turn, stent 50, having reached its austenitic state, expands along the length of tongue 82 to grip prostatic urethra 53. This allows the clinician to proceed to full deployment.
Full deployment is illustrated in FIG. 14. The proximal end of stent 50 abuts against the distal end of outer sheath 75. Thus, tubular member 80 may be proximally retracted with respect to outer sheath 75 without displacing stent 50 because the distal end of outer sheath prevents any proximal displacement of stent 50. This stands in contrast to bi-petaled catheter 10 wherein the clinician must distally displace stent 50 during deployment. The only displacement of stent 50 during deployment using single-petaled catheter 70 occurs during the initial deployment stage illustrated in
After proximally retracting tubular member 80 from stent 50 as illustrated in
While various embodiments of the present invention have been described above, it should be understood that they have been presented by way of example only, and not limitation. Thus, the breadth and scope of the present invention should not be limited by any of the above-described exemplary embodiments, but should be defined only in accordance with the following claims and their equivalents.
Eum, Jay J., Mikus, Paul W., Bui, Dennis, Kelly, Gregory
Patent | Priority | Assignee | Title |
10010438, | Oct 06 2008 | FLEXIBLE STENTING SOLUTIONS, INC. | Reconstrainable stent delivery system |
10085753, | Jul 01 2005 | Abbott Laboratories | Clip applier and methods of use |
10105132, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Devices, systems and methods for treating benign prostatic hyperplasia and other conditions |
10111664, | Jan 05 2000 | Integrated Vascular Systems, Inc. | Closure system and methods of use |
10130353, | Jun 29 2012 | TELEFLEX LIFE SCIENCES LLC | Flexible system for delivering an anchor |
10137020, | Dec 09 2014 | Cook Medical Technologies LLC | Two pronged handle |
10143461, | May 20 2005 | Teleflex Life Sciences Limited | Devices, systems and methods for retracting, lifting, compressing, supporting or repositioning tissues or anatomical structures |
10195014, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Devices, systems and methods for treating benign prostatic hyperplasia and other conditions |
10201340, | Feb 21 2002 | Integrated Vascular Systems, Inc. | Sheath apparatus and methods for delivering a closure device |
10206800, | Jul 11 2007 | C.R. Bard, Inc. | Device for catheter sheath retraction |
10245013, | Dec 07 2000 | Integrated Vascular Systems, Inc. | Closure device and methods for making and using them |
10265061, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Latching anchor device |
10292801, | Mar 29 2012 | TELEFLEX LIFE SCIENCES LLC | System for delivering anchors for treating incontinence |
10299780, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Apparatus and method for manipulating or retracting tissue and anatomical structure |
10315018, | Sep 27 2006 | Boston Scientific Scimed Inc. | Catheter shaft designs |
10349932, | Mar 15 2013 | TELEFLEX LIFE SCIENCES LLC | Anchor delivery system |
10398418, | Jan 30 2003 | Integrated Vascular Systems, Inc. | Clip applier and methods of use |
10413295, | May 16 2008 | Abbott Laboratories | Engaging element for engaging tissue |
10426509, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Median lobe destruction apparatus and method |
10492792, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Devices, systems and methods for treating benign prostatic hyperplasia and other conditions |
10512758, | Jul 01 2008 | Endologix LLC | Catheter system and methods of using same |
10537312, | Dec 21 2012 | Abbott Cardiovascular Systems, Inc. | Articulating suturing device |
10537313, | Jan 09 2009 | Abbott Vascular, Inc. | Closure devices and methods |
10575844, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Devices, systems and methods for treating benign prostatic hyperplasia and other conditions |
10660775, | Mar 01 2011 | Endologix LLC | Catheter system and methods of using same |
10912637, | Mar 14 2013 | TELEFLEX LIFE SCIENCES LLC | Devices, systems and methods for treating benign prostatic hyperplasia and other conditions |
10925587, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Anchor delivery system |
10945719, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Devices, systems and methods for retracting, lifting, compressing, supporting or repositioning tissues or anatomical structures |
10952879, | Oct 21 2010 | C. R. Bard, Inc. | System to deliver a bodily implant |
10993822, | Aug 07 2006 | C. R. Bard, Inc. | Hand-held actuator device |
11026821, | Jul 11 2007 | C. R. Bard, Inc. | Device for catheter sheath retraction |
11026822, | Jan 13 2006 | C. R. Bard, Inc. | Stent delivery system |
11090036, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Devices, systems and methods for treating benign prostatic hyperplasia and other conditions |
11109990, | Jun 11 2008 | C. R. Bard, Inc. | Catheter delivery device |
11129608, | Mar 15 2013 | TELEFLEX LIFE SCIENCES LLC | Anchor delivery system |
11129737, | Jun 30 2015 | Endologix LLC | Locking assembly for coupling guidewire to delivery system |
11129969, | Feb 23 2017 | Boston Scientific Scimed, Inc. | Loading tools for use with medical devices |
11298115, | Aug 03 2020 | TELEFLEX LIFE SCIENCES LLC | Handle and cartridge system for medical interventions |
11331093, | Jun 29 2012 | TELEFLEX LIFE SCIENCES LLC | Flexible system for delivering an anchor |
11344304, | Jul 01 2005 | Abbott Laboratories | Clip applier and methods of use |
11439378, | Jan 09 2009 | Abbott Cardiovascular Systems, Inc. | Closure devices and methods |
11471148, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Devices, systems and methods for treating benign prostatic hyperplasia and other conditions |
11504149, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Median lobe destruction apparatus and method |
11589856, | Jan 30 2003 | Integrated Vascular Systems, Inc. | Clip applier and methods of use |
11672518, | Dec 21 2012 | Abbott Cardiovascular Systems, Inc. | Articulating suturing device |
11672520, | Dec 23 2017 | TELEFLEX LIFE SCIENCES LLC | Expandable tissue engagement apparatus and method |
11801041, | Aug 03 2020 | TELEFLEX LIFE SCIENCES LLC | Handle and cartridge system for medical interventions |
11850140, | Mar 14 2013 | TELEFLEX LIFE SCIENCES LLC | Devices, systems and methods for treating benign prostatic hyperplasia and other conditions |
6866669, | Oct 12 2001 | CARDINAL HEALTH SWITZERLAND 515 GMBH | Locking handle deployment mechanism for medical device and method |
6939352, | Oct 12 2001 | CARDINAL HEALTH SWITZERLAND 515 GMBH | Handle deployment mechanism for medical device and method |
7011675, | Apr 30 2001 | Boston Scientific Scimed, Inc | Endoscopic stent delivery system and method |
7060038, | Apr 24 2003 | Medtronic Vascular, Inc | Device for delivering a sensor to the endovascular system and method of use |
7122050, | Sep 30 1998 | Bard Peripheral Vascular, Inc | Delivery mechanism for implantable stent |
7252680, | Apr 18 2001 | Merit Medical Systems, Inc | Removable essentially cylindrical implants |
7381216, | Oct 12 2001 | CARDINAL HEALTH SWITZERLAND 515 GMBH | Method for locking handle deployment mechanism with medical device |
7476244, | Oct 12 2001 | CARDINAL HEALTH SWITZERLAND 515 GMBH | Locking handle deployment mechanism for medical device and method |
7604660, | May 01 2003 | Merit Medical Systems, Inc | Bifurcated medical appliance delivery apparatus and method |
7608099, | Oct 26 2002 | Merit Medical Systems, Inc | Medical appliance delivery apparatus and method of use |
7637934, | Mar 31 2003 | Merit Medical Systems, Inc | Medical appliance optical delivery and deployment apparatus and method |
7645286, | Dec 22 2005 | TELEFLEX LIFE SCIENCES LLC | Devices, systems and methods for retracting, lifting, compressing, supporting or repositioning tissues or anatomical structures |
7651521, | Mar 02 2004 | Biosensors International Group, Ltd | Corewire actuated delivery system with fixed distal stent-carrying extension |
7699884, | Mar 22 2006 | Biosensors International Group, Ltd | Method of stenting with minimal diameter guided delivery systems |
7757691, | Aug 09 2004 | Merit Medical Systems, Inc | Therapeutic medical appliance delivery and method of use |
7758624, | Nov 13 2000 | ANGIOMED GMBH & CO MEDIZINTECHNIK KG | Implant delivery device |
7771463, | Mar 26 2003 | Biosensors International Group, Ltd | Twist-down implant delivery technologies |
7785360, | Sep 28 2001 | Merit Medical Systems, Inc | Instrument for implanting vascular prostheses |
7785361, | Dec 24 2003 | Biosensors International Group, Ltd | Implant delivery technologies |
7794494, | Oct 11 2002 | University of Connecticut | Implantable medical devices |
7803180, | Apr 04 2005 | FLEXIBLE STENTING SOLUTIONS, INC | Flexible stent |
7806904, | Dec 07 2000 | INTEGRATED VASCULAR SYSTEMS, INC | Closure device |
7806910, | Nov 26 2002 | Abbott Laboratories | Multi-element biased suture clip |
7815655, | May 20 2005 | Teleflex Life Sciences Limited | Devices, systems and methods for retracting, lifting, compressing, supporting or repositioning tissues or anatomical structures |
7819895, | Jan 05 2000 | Integrated Vascular Systems, Inc. | Vascular sheath with bioabsorbable puncture site closure apparatus and methods of use |
7828817, | Jan 05 2000 | Integrated Vascular Systems, Inc. | Apparatus and methods for delivering a closure device |
7841502, | Dec 18 2007 | Abbott Laboratories | Modular clip applier |
7842068, | Dec 07 2000 | Integrated Vascular Systems, Inc. | Apparatus and methods for providing tactile feedback while delivering a closure device |
7850709, | Jun 04 2002 | Abbott Vascular Inc | Blood vessel closure clip and delivery device |
7850797, | Dec 17 2003 | Integrated Vascular Systems, Inc. | Methods for manufacturing a clip and clip |
7854810, | Dec 31 2002 | Integrated Vascular Systems, Inc. | Methods for manufacturing a clip and clip |
7857828, | Jan 30 2003 | INTEGRATED VASCULAR SYSTEMS, INC | Clip applier and methods of use |
7862602, | Nov 02 2005 | Biosensors International Group, Ltd | Indirect-release electrolytic implant delivery systems |
7862603, | Oct 19 2006 | Olympus Corporation | Stent delivery system |
7867249, | Jan 30 2003 | INTEGRATED VASCULAR SYSTEMS, INC | Clip applier and methods of use |
7879071, | Dec 07 2000 | Integrated Vascular Systems, Inc. | Closure device and methods for making and using them |
7887555, | Dec 07 2000 | Integrated Vascular Systems, Inc. | Closure device and methods for making and using them |
7887563, | Jan 22 2003 | INTECH DIRECT, INC | Surgical staple |
7901428, | Jan 05 2000 | INTEGRATED VASCULAR SYSTEMS, INC | Vascular sheath with bioabsorbable puncture site closure apparatus and methods of use |
7905900, | Jan 30 2003 | INTEGRATED VASCULAR SYSTEMS, INC | Clip applier and methods of use |
7918873, | Jun 07 2001 | Abbott Vascular Inc | Surgical staple |
7931669, | Jan 05 2000 | Integrated Vascular Systems, Inc. | Integrated vascular device with puncture site closure component and sealant and methods of use |
7935141, | Aug 17 2005 | C R BARD, INC | Variable speed stent delivery system |
7951158, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Devices, systems and methods for retracting, lifting, compressing, supporting or repositioning tissues or anatomical structures |
7967829, | Oct 09 2003 | Boston Scientific Scimed, Inc | Medical device delivery system |
7976936, | Jul 18 2003 | University of Connecticut | Endoprostheses |
7981148, | May 16 2007 | Boston Scientific Scimed, Inc | Stent delivery catheter |
8007503, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Apparatus and method for manipulating or retracting tissue and anatomical structure |
8007512, | Feb 21 2002 | BLACKROCK ADVISORS, LLC | Plunger apparatus and methods for delivering a closure device |
8016869, | Mar 26 2003 | Biosensors International Group, Ltd | Guidewire-less stent delivery methods |
8025692, | Oct 02 2001 | ANGIOMED GMBH & CO MEDIZINTECHNIK KG | Stent delivery system |
8034100, | Mar 11 1999 | Endologix LLC | Graft deployment system |
8043309, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Devices, systems and methods for retracting, lifting, compressing, supporting or repositioning tissues or anatomical structures |
8043361, | Dec 10 2004 | Boston Scientific Scimed, Inc | Implantable medical devices, and methods of delivering the same |
8048108, | Dec 23 2005 | ABBOTT VASCULAR INC. | Vascular closure methods and apparatuses |
8062344, | Apr 30 2001 | ANGIOMED GMBH & CO. MEDIZINTECHNIK KG | Variable speed self-expanding stent delivery system and luer locking connector |
8075606, | Jul 06 2001 | ANGIOMED GMBH & CO MEDIZINTECHNIK KG | Delivery system having a rapid pusher assembly for self-expanding stent, and stent exchange configuration |
8083692, | Jul 11 2003 | Merit Medical Systems, Inc. | Lumen-measuring devices and method |
8092509, | Nov 11 1999 | ANGIOMED GMBH & CO. MEDIZINTECHNIK KG | Implant delivery device |
8128644, | Dec 07 2000 | Integrated Vascular Systems, Inc. | Closure device and methods for making and using them |
8157815, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Integrated handle assembly for anchor delivery system |
8167925, | Mar 11 1999 | Endologix LLC | Single puncture bifurcation graft deployment system |
8182497, | Dec 07 2000 | Integrated Vascular Systems, Inc. | Closure device |
8192459, | Jun 04 2002 | ABBOTT VASCULAR INC. | Blood vessel closure clip and delivery device |
8202283, | Dec 31 2002 | Integrated Vascular Systems, Inc. | Methods for manufacturing a clip and clip |
8202293, | Jan 30 2003 | INTEGRATED VASCULAR SYSTEMS, INC | Clip applier and methods of use |
8202294, | Jan 30 2003 | Integrated Vascular Systems, Inc. | Clip applier and methods of use |
8211118, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Apparatus and method for manipulating or retracting tissue and anatomical structure |
8216254, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Anchor delivery system with replaceable cartridge |
8216295, | Jul 01 2008 | Endologix LLC | Catheter system and methods of using same |
8226681, | Jun 25 2007 | Abbott Laboratories | Methods, devices, and apparatus for managing access through tissue |
8236026, | Dec 07 2000 | Integrated Vascular Systems, Inc. | Closure device and methods for making and using them |
8236040, | Apr 11 2008 | Endologix LLC | Bifurcated graft deployment systems and methods |
8257390, | Dec 07 2000 | Integrated Vascular Systems, Inc. | Closure device and methods for making and using them |
8267987, | Oct 26 2002 | Merit Medical Systems, Inc. | Medical appliance delivery apparatus and method of use |
8273116, | Nov 02 2005 | Biosensors International Group, Ltd. | Indirect-release electrolytic implant delivery systems |
8292827, | Dec 12 2005 | Boston Scientific Scimed, Inc. | Micromachined medical devices |
8292939, | Sep 06 2005 | Allium Ltd | System and method for delivering a medical device to a body location |
8298277, | Mar 31 2003 | Merit Medical Systems, Inc. | Medical appliance optical delivery and deployment apparatus and method |
8303624, | Mar 15 2010 | Abbott Cardiovascular Systems, Inc. | Bioabsorbable plug |
8313497, | Jul 01 2005 | Abbott Laboratories | Clip applier and methods of use |
8323312, | Dec 22 2008 | Abbott Laboratories | Closure device |
8333776, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Anchor delivery system |
8343187, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Devices, systems and methods for treating benign prostatic hyperplasia and other conditions |
8353946, | May 01 2003 | Merit Medical Systems, Inc. | Bifurcated medical appliance delivery apparatus and method |
8357192, | Apr 11 2008 | Endologix LLC | Bifurcated graft deployment systems and methods |
8394110, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Apparatus and method for manipulating or retracting tissue and anatomical structure |
8394113, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Coiled anchor device |
8398656, | Jan 30 2003 | INTEGRATED VASCULAR SYSTEMS, INC | Clip applier and methods of use |
8398676, | Oct 30 2008 | Abbott Vascular Inc | Closure device |
8425535, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Multi-actuating trigger anchor delivery system |
8454650, | Dec 07 2000 | Integrated Vascular Systems, Inc. | Closure device and methods for making and using them |
8454655, | Aug 05 2004 | TELEFLEX LIFE SCIENCES LLC | Method for anchoring suture and approximating tissue |
8460213, | Jan 03 2008 | Boston Scientific Scimed, Inc | Cut tubular members for a medical device and methods for making and using the same |
8469995, | Jun 04 2002 | ABBOTT VASCULAR INC. | Blood vessel closure clip and delivery device |
8475515, | Jan 15 2003 | Angiomed GmbH & Co., Medizinitechnik KG | Trans-luminal surgical device |
8486092, | Dec 07 2000 | Integrated Vascular Systems, Inc. | Closure device and methods for making and using them |
8486108, | Dec 07 2000 | Integrated Vascular Systems, Inc. | Closure device and methods for making and using them |
8491606, | Dec 22 2005 | TELEFLEX LIFE SCIENCES LLC | Median lobe retraction apparatus and method |
8500789, | Jul 11 2007 | C R BARD, INC | Device for catheter sheath retraction |
8500794, | Aug 02 2007 | FLEXIBLE STENTING SOLUTIONS, INC. | Flexible stent |
8506614, | Apr 30 2001 | Boston Scientific Scimed, Inc. | Endoscopic stent delivery system and method |
8511310, | Aug 07 2003 | Merit Medical Systems, Inc. | Therapeutic medical appliance delivery and method of use |
8518057, | Jul 01 2005 | Abbott Laboratories | Clip applier and methods of use |
8529584, | Dec 27 2010 | TELEFLEX LIFE SCIENCES LLC | Median lobe band implant apparatus and method |
8529587, | Jan 30 2003 | Integrated Vascular Systems, Inc. | Methods of use of a clip applier |
8556930, | Jun 28 2006 | Abbott Laboratories | Vessel closure device |
8568467, | Jan 15 2003 | ANGIOMED GMBH & CO MEDIZINITECHNIK KG | Trans-luminal surgical device |
8579932, | Feb 21 2002 | Integrated Vascular Systems, Inc. | Sheath apparatus and methods for delivering a closure device |
8579954, | Nov 02 2005 | Biosensors International Group, Ltd | Untwisting restraint implant delivery system |
8585836, | Dec 31 2002 | Integrated Vascular Systems, Inc. | Methods for manufacturing a clip and clip |
8590760, | May 25 2004 | Abbott Vascular Inc | Surgical stapler |
8597325, | Dec 07 2000 | Integrated Vascular Systems, Inc. | Apparatus and methods for providing tactile feedback while delivering a closure device |
8603106, | May 20 2005 | Teleflex Life Sciences Limited | Integrated handle assembly for anchor delivery system |
8603116, | Aug 04 2010 | Abbott Cardiovascular Systems, Inc. | Closure device with long tines |
8603136, | Dec 07 2000 | Integrated Vascular Systems, Inc. | Apparatus and methods for providing tactile feedback while delivering a closure device |
8617184, | Feb 15 2011 | Abbott Cardiovascular Systems, Inc. | Vessel closure system |
8628542, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Median lobe destruction apparatus and method |
8652193, | May 09 2005 | ANGIOMED GMBH & CO MEDIZINTECHNIK KG | Implant delivery device |
8657852, | Oct 30 2008 | ABBOTT VASCULAR INC. | Closure device |
8657870, | Jun 26 2009 | Biosensors International Group, Ltd | Implant delivery apparatus and methods with electrolytic release |
8663243, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Devices, systems and methods for treating benign prostatic hyperplasia and other conditions |
8668705, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Latching anchor device |
8672953, | Dec 17 2007 | Abbott Laboratories | Tissue closure system and methods of use |
8690910, | Dec 07 2000 | INTEGRATED VASCULAR SYSTEMS, INC | Closure device and methods for making and using them |
8715298, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Apparatus and method for manipulating or retracting tissue and anatomical structure |
8728119, | Jun 07 2001 | ABBOTT VASCULAR INC. | Surgical staple |
8734468, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Devices, systems and methods for treating benign prostatic hyperplasia and other conditions |
8734500, | Sep 27 2011 | Depuy Synthes Products, LLC | Distal detachment mechanisms for vascular devices |
8747304, | Oct 31 2006 | Ethicon Endo-Surgery, Inc | Attachment apparatus for an endoscope |
8758366, | Jul 09 2007 | TELEFLEX LIFE SCIENCES LLC | Multi-actuating trigger anchor delivery system |
8758396, | Jan 05 2000 | Integrated Vascular Systems, Inc. | Vascular sheath with bioabsorbable puncture site closure apparatus and methods of use |
8758398, | Sep 08 2006 | INTEGRATED VASCULAR SYSTEMS, INC | Apparatus and method for delivering a closure element |
8758399, | Aug 02 2010 | Abbott Cardiovascular Systems, Inc. | Expandable bioabsorbable plug apparatus and method |
8758400, | Jan 05 2000 | INTEGRATED VASCULAR SYSTEMS, INC | Closure system and methods of use |
8764812, | Apr 11 2008 | Endologix LLC | Bifurcated graft deployment systems and methods |
8777992, | Mar 14 2002 | Teleflex Life Sciences Limited | Methods for anchoring suture and approximating tissue |
8784447, | Sep 08 2000 | Abbott Vascular Inc | Surgical stapler |
8784465, | Oct 11 2002 | Boston Scientific Scimed, Inc.; University of Connecticut | Implantable medical devices |
8808310, | Apr 20 2006 | Integrated Vascular Systems, Inc. | Resettable clip applier and reset tools |
8808346, | Jan 13 2006 | C R BARD, INC | Stent delivery system |
8820602, | Dec 18 2007 | Abbott Laboratories | Modular clip applier |
8821534, | Dec 06 2010 | INTEGRATED VASCULAR SYSTEMS, INC | Clip applier having improved hemostasis and methods of use |
8834492, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Continuous indentation lateral lobe apparatus and method |
8852266, | Sep 30 1998 | Bard Peripheral Vascular, Inc. | Delivery mechanism for implantable stent |
8858594, | Dec 22 2008 | Abbott Laboratories | Curved closure device |
8888799, | May 20 2005 | Teleflex Life Sciences Limited | Coiled anchor device |
8893947, | Dec 17 2007 | Abbott Laboratories | Clip applier and methods of use |
8900252, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Devices, systems and methods for treating benign prostatic hyperplasia and other conditions |
8900285, | Nov 02 2005 | Biosensors International Group, Ltd | Covering electrolytic restraint implant delivery systems |
8905937, | Feb 26 2009 | INTEGRATED VASCULAR SYSTEMS, INC | Methods and apparatus for locating a surface of a body lumen |
8920442, | Aug 24 2005 | Abbott Vascular Inc | Vascular opening edge eversion methods and apparatuses |
8926633, | Jun 24 2005 | Abbott Laboratories | Apparatus and method for delivering a closure element |
8926656, | Jan 30 2003 | Integated Vascular Systems, Inc. | Clip applier and methods of use |
8936609, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Apparatus and method for manipulating or retracting tissue and anatomical structure |
8939996, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Anchor delivery System |
8940001, | May 20 2005 | Teleflex Life Sciences Limited | Devices, systems and methods for retracting, lifting, compressing, supporting or repositioning tissues or anatomical structures |
8945152, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Multi-actuating trigger anchor delivery system |
8956388, | Jan 05 2000 | Integrated Vascular Systems, Inc. | Integrated vascular device with puncture site closure component and sealant |
8974509, | Nov 02 2005 | Biosensors International Group, Ltd | Pass-through restraint electrolytic implant delivery systems |
9034001, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Slotted anchor device |
9050068, | Jul 01 2005 | Abbott Laboratories | Clip applier and methods of use |
9050087, | Jan 05 2000 | Integrated Vascular Systems, Inc. | Integrated vascular device with puncture site closure component and sealant and methods of use |
9060769, | Sep 08 2000 | ABBOTT VASCULAR INC. | Surgical stapler |
9078779, | Aug 07 2006 | C R BARD, INC | Hand-held actuator device |
9089311, | Jan 09 2009 | ABBOTT VASCULAR INC. | Vessel closure devices and methods |
9089674, | Oct 06 2000 | Integrated Vascular Systems, Inc. | Apparatus and methods for positioning a vascular sheath |
9115245, | Jul 18 2002 | Boston Scientific Scimed, Inc. | Implantable medical devices |
9149266, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Deforming anchor device |
9149276, | Mar 21 2011 | Abbott Cardiovascular Systems, Inc. | Clip and deployment apparatus for tissue closure |
9149376, | Oct 06 2008 | FLEXIBLE STENTING SOLUTIONS, INC | Reconstrainable stent delivery system |
9161749, | Apr 14 2011 | TELEFLEX LIFE SCIENCES LLC | Method and apparatus for treating sexual dysfunction |
9173644, | Jan 09 2009 | ABBOTT VASCULAR INC. | Closure devices, systems, and methods |
9227037, | Jan 03 2008 | Boston Scientific Scimed, Inc. | Cut tubular members for a medical device and methods for making and using the same |
9241696, | Oct 30 2008 | Abbott Vascular Inc | Closure device |
9271707, | Jan 30 2003 | Integrated Vascular Systems, Inc. | Clip applier and methods of use |
9282965, | May 16 2008 | Abbott Laboratories | Apparatus and methods for engaging tissue |
9295469, | Jun 04 2002 | ABBOTT VASCULAR INC. | Blood vessel closure clip and delivery device |
9314230, | Jan 09 2009 | ABBOTT VASCULAR INC. | Closure device with rapidly eroding anchor |
9320511, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Multi-actuating trigger anchor delivery system |
9320522, | Dec 07 2000 | Integrated Vascular Systems, Inc. | Closure device and methods for making and using them |
9332976, | Nov 30 2011 | Abbott Cardiovascular Systems, Inc. | Tissue closure device |
9339632, | Sep 27 2006 | Boston Scientific Scimed, Inc.; Boston Scientific Scimed, Inc | Catheter shaft designs |
9364209, | Dec 21 2012 | Abbott Cardiovascular Systems, Inc. | Articulating suturing device |
9364212, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Suture anchoring devices and methods for use |
9398914, | Jan 30 2003 | Integrated Vascular Systems, Inc. | Methods of use of a clip applier |
9402625, | Sep 08 2000 | ABBOTT VASCULAR INC. | Surgical stapler |
9402711, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Median lobe band implant apparatus and method |
9414820, | Jan 09 2009 | ABBOTT VASCULAR INC. | Closure devices, systems, and methods |
9414824, | Jan 16 2009 | ABBOTT VASCULAR INC. | Closure devices, systems, and methods |
9421115, | Jul 10 2008 | C. R. Bard, Inc. | Device for catheter sheath retraction |
9456811, | Aug 24 2005 | Abbott Vascular Inc | Vascular closure methods and apparatuses |
9486191, | Jan 09 2009 | ABBOTT VASCULAR, INC | Closure devices |
9486203, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Latching anchor device |
9498196, | Feb 21 2002 | Integrated Vascular Systems, Inc. | Sheath apparatus and methods for delivering a closure device |
9498356, | Dec 19 2012 | Cook Medical Technologies, LLC | Flexible stent and delivery system |
9504461, | May 20 2005 | Teleflex Life Sciences Limited | Anchor delivery system |
9549739, | May 20 2005 | TELEFLEX LIFE SCIENCES LLC | Devices, systems and methods for treating benign prostatic hyperplasia and other conditions |
9549835, | Mar 01 2011 | Endologix LLC | Catheter system and methods of using same |
9554786, | Dec 07 2000 | Integrated Vascular Systems, Inc. | Closure device and methods for making and using them |
9579091, | Jan 05 2000 | INTEGRATED VASCULAR SYSTEMS, INC | Closure system and methods of use |
9585646, | Dec 07 2000 | Integrated Vascular Systems, Inc. | Closure device and methods for making and using them |
9585647, | Aug 26 2009 | Abbott Laboratories | Medical device for repairing a fistula |
9592137, | Apr 04 2006 | FLEXIBLE STENTING SOLUTIONS, INC | Flexible stent |
9675486, | Jan 13 2006 | C.R. Bard, Inc. | Stent delivery system |
9687374, | Mar 01 2011 | Endologix LLC | Catheter system and methods of using same |
9700701, | Jul 01 2008 | Endologix LLC | Catheter system and methods of using same |
9750625, | Jun 11 2008 | C.R. Bard, Inc.; C R BARD, INC | Catheter delivery device |
9763814, | Oct 24 2014 | Cook Medical Technologies LLC | Elongate medical device |
9801745, | Oct 21 2010 | C R BARD, INC | System to deliver a bodily implant |
9962144, | Jun 28 2006 | Abbott Laboratories | Vessel closure device |
9980728, | Jun 04 2002 | Abbott Vascular Inc | Blood vessel closure clip and delivery device |
D611144, | Jun 28 2006 | Abbott Laboratories | Apparatus for delivering a closure element |
Patent | Priority | Assignee | Title |
3868956, | |||
4166469, | Dec 13 1977 | LITTLEFORD,ELIZABETH H | Apparatus and method for inserting an electrode |
4503569, | Mar 03 1983 | Cook Incorporated | Transluminally placed expandable graft prosthesis |
4596559, | Nov 02 1984 | Break-away handle for a catheter introducer set | |
4738666, | Jun 11 1985 | Genus Catheter Technologies, Inc. | Variable diameter catheter |
4830003, | Jun 17 1988 | Medtronic Ave, Inc | Compressive stent and delivery system |
4921479, | Oct 02 1987 | Catheter sheath with longitudinal seam | |
4994066, | Oct 07 1988 | Prostatic stent | |
5026377, | Jul 13 1989 | AMS Research Corporation | Stent placement instrument and method |
5044369, | Jan 23 1989 | Bent topless catheters | |
5192297, | Dec 31 1991 | Medtronic, Inc. | Apparatus and method for placement and implantation of a stent |
5201901, | Oct 08 1987 | Terumo Kabushiki Kaisha | Expansion unit and apparatus for expanding tubular organ lumen |
5224953, | May 01 1992 | The Beth Israel Hospital Association | Method for treatment of obstructive portions of urinary passageways |
5344425, | Sep 20 1990 | Interface Biomedical Laboratories | Intravascular stent and method for conditioning the surfaces thereof |
5395349, | Dec 13 1991 | LifeShield Sciences LLC | Dual valve reinforced sheath and method |
5433723, | Oct 11 1991 | Angiomed AG | Apparatus for widening a stenosis |
5562641, | May 28 1993 | Medinol, Ltd | Two way shape memory alloy medical stent |
5571172, | Aug 15 1994 | MAQUET CARDIOVASCULAR LLC | Method and apparatus for endoscopic grafting |
5591172, | Jun 14 1991 | AMS MEDINVENT, S A | Transluminal implantation device |
5591226, | Jan 23 1995 | SciMed Life Systems, INC; Boston Scientific Scimed, Inc | Percutaneous stent-graft and method for delivery thereof |
5601591, | Sep 23 1994 | VIDAMED, INC , A DELAWARE CORPORATION | Stent for use in prostatic urethra, apparatus and placement device for same and method |
5607466, | Feb 03 1992 | Boston Scientific Corporation | Catheter with a stent |
5643278, | Apr 06 1995 | AngioDynamics, Inc | Stent delivery system |
5667514, | Dec 04 1995 | Cochlear Ltd. | Device and method for inserting a flexible element into soft tissue |
5667522, | Mar 03 1994 | MEDINOL LTD | Urological stent and deployment device therefor |
5690644, | Dec 30 1992 | SciMed Life Systems, INC; Boston Scientific Scimed, Inc | Apparatus for deploying body implantable stent |
5766203, | Jul 20 1995 | Avantec Vascular Corporation | Sheath with expandable distal extremity and balloon catheters and stents for use therewith and method |
5766237, | Feb 21 1992 | LIFEPORT SCIENCES LLC | Method of reinforcing a body vessel using a intraluminal stent |
5782838, | Oct 20 1994 | EV3 PERIPHERAL, INC | Cytoscope delivery system |
5782847, | Jun 07 1993 | EndoVascular Instruments, Inc. | Anti-stenotic method for occluded and partially occluded arteries |
5868707, | Aug 15 1996 | Advanced Cardiovascular Systems, Inc. | Protective sheath for catheter balloons |
6077295, | Jul 15 1996 | Advanced Cardiovascular Systems, Inc. | Self-expanding stent delivery system |
6447540, | Nov 15 1996 | Cook Medical Technologies LLC | Stent deployment device including splittable sleeve containing the stent |
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